TY - JOUR
T1 - Ultrafine tungsten as a plasma-facing component in fusion devices
T2 - Effect of high flux, high fluence low energy helium irradiation
AU - El-Atwani, O.
AU - Gonderman, Sean
AU - Efe, Mert
AU - De Temmerman, Gregory
AU - Morgan, Thomas
AU - Bystrov, Kirill
AU - Klenosky, Daniel
AU - Qiu, Tian
AU - Allain, J. P.
PY - 2014/8/1
Y1 - 2014/8/1
N2 - This work discusses the response of ultrafine-grained tungsten materials to high-flux, high-fluence, low energy pure He irradiation. Ultrafine-grained tungsten samples were exposed in the Pilot-PSI (Westerhout et al 2007 Phys. Scr. T128 18) linear plasma device at the Dutch Institute for Fundamental Energy Research (DIFFER) in Nieuwegein, the Netherlands. The He flux on the tungsten samples ranged from 1.0× 1023-2.0× 10 24ionsm-2s-1, the sample bias ranged from a negative (20-65)V, and the sample temperatures ranged from 600-1500C. SEM analysis of the exposed samples clearly shows that ultrafine-grained tungsten materials have a greater fluence threshold to the formation of fuzz by an order or magnitude or more, supporting the conjecture that grain boundaries play a major role in the mechanisms of radiation damage. Pre-fuzz damage analysis is addressed, as in the role of grain orientation on structure formation. Grains of (1 1 0) and (1 1 1) orientation showed only pore formation, while (0 0 1) oriented grains showed ripples (higher structures) decorated with pores. Blistering at the grain boundaries is also observed in this case. In situ TEM analysis during irradiation revealed facetted bubble formation at the grain boundaries likely responsible for blistering at this location. The results could have significant implications for future plasma-burning fusion devices given the He-induced damage could lead to macroscopic dust emission into the fusion plasma.
AB - This work discusses the response of ultrafine-grained tungsten materials to high-flux, high-fluence, low energy pure He irradiation. Ultrafine-grained tungsten samples were exposed in the Pilot-PSI (Westerhout et al 2007 Phys. Scr. T128 18) linear plasma device at the Dutch Institute for Fundamental Energy Research (DIFFER) in Nieuwegein, the Netherlands. The He flux on the tungsten samples ranged from 1.0× 1023-2.0× 10 24ionsm-2s-1, the sample bias ranged from a negative (20-65)V, and the sample temperatures ranged from 600-1500C. SEM analysis of the exposed samples clearly shows that ultrafine-grained tungsten materials have a greater fluence threshold to the formation of fuzz by an order or magnitude or more, supporting the conjecture that grain boundaries play a major role in the mechanisms of radiation damage. Pre-fuzz damage analysis is addressed, as in the role of grain orientation on structure formation. Grains of (1 1 0) and (1 1 1) orientation showed only pore formation, while (0 0 1) oriented grains showed ripples (higher structures) decorated with pores. Blistering at the grain boundaries is also observed in this case. In situ TEM analysis during irradiation revealed facetted bubble formation at the grain boundaries likely responsible for blistering at this location. The results could have significant implications for future plasma-burning fusion devices given the He-induced damage could lead to macroscopic dust emission into the fusion plasma.
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U2 - 10.1088/0029-5515/54/8/083013
DO - 10.1088/0029-5515/54/8/083013
M3 - Article
AN - SCOPUS:84905055045
SN - 0029-5515
VL - 54
JO - Nuclear Fusion
JF - Nuclear Fusion
IS - 8
M1 - 083013
ER -